Chen Chen, Liu Fei, Lin Jun, Zhu Kaiguang, Wang Yanzhang
Key Laboratory of Geo-exploration Instruments, Ministry of Education of China, Changchun 130061, China.
College of Instrumentation and Electrical Engineering, Jilin University, Changchun 130061, China.
Sensors (Basel). 2016 Apr 12;16(4):508. doi: 10.3390/s16040508.
The air-core coil sensor (ACS) is widely used as a transducer to measure the variation in magnetic fields of a helicopter transient electromagnetic (TEM) system. A high periodic emitting current induces the magnetic field signal of the underground medium. However, such current also generates a high primary field signal that can affect the received signal of the ACS and even damage the receiver. To increase the dynamic range of the received signal and to protect the receiver when emitting current rises/falls, the combination of ACS with magnetic flux compensation structure (bucking coil) is necessary. Moreover, the optimized ACS, which is composed of an air-core coil and a differential pre-amplifier circuit, must be investigated to meet the requirements of the helicopter TEM system suited to rapid surveying for shallow buried metal mine in rough topography. Accordingly, two ACSs are fabricated in this study, and their performance is verified and compared inside a magnetic shielding room. Using the designed ACSs, field experiments are conducted in Baoqing County. The field experimental data show that the primary field response can be compensated when the bucking coil is placed at an appropriate point in the range of allowed shift distance beyond the center of the transmitting coil and that the damage to the receiver induced by the over-statured signal can be solved. In conclusion, a more suitable ACS is adopted and is shown to have better performance, with a mass of 2.5 kg, resultant effective area of 11.6 m² (i.e., diameter of 0.496 m), 3 dB bandwidth of 66 kHz, signal-to-noise ratio of 4 (i.e., varying magnetic field strength of 0.2 nT/s), and normalized equivalent input noise of 3.62 nV/m².
空心线圈传感器(ACS)被广泛用作一种换能器,以测量直升机瞬变电磁(TEM)系统磁场的变化。高周期性发射电流会感应地下介质的磁场信号。然而,这样的电流也会产生一个高一次场信号,该信号会影响ACS的接收信号,甚至损坏接收器。为了增加接收信号的动态范围,并在发射电流上升/下降时保护接收器,有必要将ACS与磁通补偿结构(补偿线圈)相结合。此外,必须研究由空心线圈和差分前置放大器电路组成的优化ACS,以满足适用于在地形崎岖的浅埋金属矿快速勘查的直升机TEM系统的要求。因此,本研究制作了两个ACS,并在磁屏蔽室内对其性能进行了验证和比较。使用设计好的ACS,在宝清县进行了野外实验。野外实验数据表明,当补偿线圈放置在发射线圈中心允许偏移距离范围内的适当位置时,可以补偿一次场响应,并且可以解决过饱和信号对接收器造成的损坏。总之,采用了一种更合适的ACS,其表现出更好的性能,质量为2.5 kg,有效面积为11.6 m²(即直径为0.496 m),3 dB带宽为66 kHz,信噪比为4(即变化磁场强度为0.2 nT/s),归一化等效输入噪声为3.62 nV/m²。